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K Klingenbeck

Publications and source records attributed to K Klingenbeck.

3 recordsLinked to original sources

Spiral interpolation algorithm for multislice spiral CT--part I: theory.

This paper presents the adaptive axial interpolator (AAI), a novel spiral interpolation approach for multislice spiral computed tomography (CT) implemented in a clinical multislice CT scanner, the SOMATOM Volume Zoom (Siemens Medical Systems, Forchheim, Germany). The method works on parallel-beam data generated from the acquired fan-beam data by azimuthal rebinning. Spiral interpolation is performed by distance-dependent weighting; i.e., for each ray, its distance to the image plane is evaluated and serves as an argument to a freely selectable weighting function, resulting in a weight factor. A normalization step is applied to the weight factors to ensure that the sum of all corresponding weights (i.e., the weights applied to rays that contribute to the same ray in the interpolated sinogram) is 1. By selection of appropriate weighting functions and suitable adjustment of the tube current, it is possible to keep the slice sensitivity profiles (SSP) as well as the pixel noise constant for all pitch values in the relevant range. Also, a large range of slice-thickness can be reconstructed from a given collimation. The method is, thus, very versatile. Further advantages are that it uses the entire applied dose for imaging and allows for efficient implementation using a table lookup approach.

Algorithms↗

[Mammography with light--possibilities and limits].

Translucence of tissue in the spectral range 650-1000 nm suggests the use of light for medical diagnosis. Measuring light absorption at wavelengths of 760, 840, 930 and 975 nm yields information on the amounts of deoxygenated and oxygenated hemoglobin as well as of fat and water. However, because of the strong scatter the propagation of light in tissue is diffuse. For this reason details in thick tissue slices cannot be imaged sharply. It is expected that tumors will differ from surrounding tissue in their scatter and absorption properties. Recent experimental progress has led to an improved contrast of details differing in their scattering properties, and also to images with better spatial resolution. This is rendered possible either by illuminating the object to be investigated with short light pulses and analyzing the time course of the emerging light or by applying intensity modulation and measuring the phase difference between the entering and the emerging light. In this way the mean pathlength of light propagation can be determined. Attention is now returning to mammography with light after the early trials on diaphanography were not successful. Clinical tests with improved instruments are in progress.

Breast Neoplasms↗